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Electrokinetic ion and fluid transport in nanopores functionalized by polyelectrolyte brushes

机译:动电的离子液体运输功能化的聚电解质纳米孔刷

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Chemically functionalized nanopores in solid-state membranes have recently emerged as versatile tools for regulating ion transport and sensing single biomolecules. This study theoretically investigated the importance of the bulk salt concentration, the geometries of the nanopore, and both the thickness and the grafting density of the polyelectrolyte (PE) brushes on the electrokinetic ion and fluid transport in two types of PE brush functionalized nanopore: PE brushes are end-grafted to the entire membrane surface (system I), and to its inner surface only (nanopore wall) (system II). Due to a more significant ion concentration polarization (CP), the enhanced local electric field inside the nanopore, the conductance, and the electroosmotic flow (EOF) velocity in system II are remarkably smaller than those in system I. In addition to a significantly enhanced EOF inside the nanopore, the direction of the flow field near both nanopore openings in system I is opposite to that of EOF inside the nanopore. This feature can be applied to regulate the electrokinetic translocation of biomolecules through a nanopore in the nanopore-based DNA sequencing platform.
机译:在固态化学功能化纳米孔膜最近成为多才多艺的工具调节离子运输和感应单一的生物分子。调查的重要性散装盐浓度,纳米孔的几何图形,密度和厚度和嫁接的聚电解质(PE)刷上动电的离子,在两个流体运输类型的PE刷功能化纳米孔:PE刷end-grafted整个膜表面(系统),它的内表面(纳米孔壁)(系统II)。由于更多重要的离子浓度极化(CP),增强当地电场内部纳米孔、电导和电渗流(EOF)速度系统II非常小比系统。除了显著增强EOF纳米孔内,两个附近的流场的方向在系统我对纳米孔的开口EOF的纳米孔内。应用于调节动电的生物分子通过纳米孔的易位纳米孔测序DNA的平台。

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